When 1.82 moles of HCL reacts with excess MnO2, how many moles of Cl2 form
2 answers:
The balanced reaction is:<span>
MnO2(s) + 4HCl(aq) → Cl2(g) + MnCl2(aq) + 2H2O(l)
We
are given the amount of hydrochloric acid to be used for the reaction. This
will be the starting point for the calculations.
1.82 mol
HCl ( 1 mol Cl2 / 4 mol HCl) = 0.46 mol Cl2 <span>Therefore,
0.46 mol of chlorine gas is produced for the reaction of hydrochloric acid and
manganese oxide.</span></span>
<u>Answer: </u> 0.455 moles of chlorine gas is formed.
<u>Explanation: </u>
We are given:
Moles of HCl = 1.82 moles
The chemical equation for the reaction of and HCl follows:
By Stoichiometry of the reaction:
If 4 moles of HCl produces 1 mole of chlorine gas
So, 1.82 moles of HCl will produce = of chlorine gas
Hence, 0.455 moles of chlorine gas is formed.
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